Reaction Time and Postural Control Under Dual-Task Conditions in Brazilian Jiu-Jitsu Athletes
Abstract
:1. Introduction
2. Materials and Methods
2.1. Participants and Procedures
2.2. Parameters
2.3. Statistical Analysis
3. Results
3.1. Comparison of Reaction Time and Postural Control Parameters Between Groups
3.2. Comparison and Correlations Within Control Group
3.3. Comparison and Correlations Within Brazilian Jiu-Jitsu Athletes
4. Discussion
5. Limitations and Future Research
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Haddad, J.M.; Rietdyk, S.; Claxton, L.J.; Huber, J.E. Task-dependent postural control throughout the lifespan. Exerc. Sport. Sci. Rev. 2013, 41, 123–132. [Google Scholar] [CrossRef] [PubMed]
- Hadamus, A.; Gulatowska, M.; Ferenc, A.; Shahnazaryan, K.; Brzuszkiewicz-Kuźmicka, G.; Błażkiewicz, M. Influence of leg dominance on the symmetry in body balance measurements. Phys. Act. Rev. 2025, 13, 88–96. [Google Scholar] [CrossRef]
- Serrano-Huete, V.; Latorre Román, P.; Pinillos, F.; Morcillo Losa, J.A.; Jimenez-Reyes, P.; Montilla, J.A. The variability of strength production capacities during a judo contest. Phys. Act. Rev. 2023, 11, 1–10. [Google Scholar] [CrossRef]
- Góra, T.; Mosler, D.; Langfort, J.; Wąsik, J. Differences in Impact Force between Side Kicks and Turning Kicks in Male Practitioners of Taekwon-Do—Case Studies. Appl. Sci. 2024, 14, 5876. [Google Scholar] [CrossRef]
- Wąsik, J.; Mosler, D.; Góra, T.; Scurek, R. Conception of effective mass and effect of force–measurement of taekwon-do master. Phys. Act. Rev. 2023, 11, 11–16. [Google Scholar] [CrossRef]
- Góra, T.; Mosler, D.; Ortenburger, D.; Wąsik, J. Sex differences in utilizing effective mass among taekwon-do athletes performing turning and side kick. Phys. Act. Rev. 2024, 12, 78–85. [Google Scholar] [CrossRef]
- Janiszewska, K.; Przybyłowicz, K. Pre-competition weight loss among Polish taekwondo competitors-occurence, methods and health consequences. Arch. Budo 2015, 11, 41–45. [Google Scholar]
- Andreato, L.V.; Santos, J.F.; Esteves, J.V.; Panissa, V.L.; Julio, U.F.; Franchini, E. Physiological, Nutritional and Performance Profiles of Brazilian Jiu-Jitsu Athletes. J. Hum. Kinet. 2016, 53, 261–271. [Google Scholar] [CrossRef]
- Andreato, V. Estimated aerobic power, muscular strength and flexibility in elite Brazilian Jiu-jijtsu athletes. Sci. Sport 2011, 26, 329–337. [Google Scholar] [CrossRef]
- Andreato, L.V.; Lara, F.J.D.; Andrade, A.; Branco, B.H.M. Physical and physiological profiles of Brazilian Jiu-Jitsu Athletes: A systematic review. Sports Med.-Open 2017, 3, 9. [Google Scholar] [CrossRef]
- Branco, B.H.; Fukuda, D.H.; Andreato, L.V.; Santos, J.F.; Esteves, J.V.; Franchini, E. The Effects of Hyperbaric Oxygen Therapy on Post-Training Recovery in Jiu-Jitsu Athletes. PLoS ONE 2016, 11, e0150517. [Google Scholar] [CrossRef] [PubMed]
- Castarlenas, J.L.; Solé, J. El enternamiento de la resistencia en los deportes de lucha con agarre: Una propuesta intergradora. Apunt. Educ. Fiscia Deportes 1997, 1, 81–86. [Google Scholar]
- Ambroży, T.; Sterkowicz-Przybycień, K.; Sterkowicz, S.; Kędra, A.; Mucha, D.; Ozimek, M.; Mucha, D. Differentiation of physical fitness in polish elite sports jiu-jitsu athletes. J. Kinesiol. Exerc. Sci. 2017, 27, 57–70. [Google Scholar]
- Kamieniarz, A.; Milert, A.; Grzybowska-Ganszczyk, D.; Opara, J.; Juras, G. Tai Chi and Qi Gong therapies as a complementary treatment in Parkinson’s disease—A systematic review. Complement. Ther. Med. 2021, 56, 102589. [Google Scholar] [CrossRef]
- Origua Rios, S.; Marks, J.; Estevan, I.; Barnett, L.M. Health benefits of hard martial arts in adults: A systematic review. J. Sports Sci. 2018, 36, 1614–1622. [Google Scholar] [CrossRef]
- Perrin, P.; Deviterne, D.; Hugel, F.; Perrot, C. Judo, better than dance, develops sensorimotor adaptabilities involved in balance control. Gait Posture 2002, 15, 187–194. [Google Scholar] [CrossRef]
- Filingeri, D.; Bianco, A.; Zangla, D.; Paoli, A.; Palma, A. Is karate effective in improving postural control? Arch. Budo 2012, 8, 203. [Google Scholar]
- Chung, P.; Ng, G. Taekwondo training improves the neuromotor excitability and reaction of large and small muscles. Phys. Ther. Sport 2012, 13, 163–169. [Google Scholar] [CrossRef]
- Chiang, C.-C.; Chiang, J.-Y.; Shiang, T.-Y. The comparison of balance ability between judo players and non-athletes. In Proceedings of the 18 International Symposium on Biomechanics in Sport, Hong Kong, China, 25–30 June 2000; pp. 68–70. [Google Scholar]
- Zemkova, E. Sport-specific balance. Sports Med. 2014, 44, 579–590. [Google Scholar] [CrossRef]
- Paillard, T.; Costes-Salon, C.; Lafont, C.; Dupui, P. Are there differences in postural regulation according to the level of competition in judoists? Br. J. Sports Med. 2002, 36, 304–305. [Google Scholar] [CrossRef]
- Paillard, T.; Margnes, E.; Portet, M.; Breucq, A. Postural ability reflects the athletic skill level of surfers. Eur. J. Appl. Physiol. 2011, 111, 1619–1623. [Google Scholar] [CrossRef] [PubMed]
- Juras, G.; Rzepko, M.; Król, P.; Czarny, W.; Bajorek, W.; Słomka, K.; Sobota, G. The effect of expertise in karate on postural control in quiet standing. Arch. Budo 2013, 9, 205–209. [Google Scholar]
- Anderson, M.; Bucks, R.S.; Bayliss, D.M.; Della Sala, S. Effect of age on dual-task performance in children and adults. Mem. Cogn. 2011, 39, 1241–1252. [Google Scholar] [CrossRef]
- Muir-Hunter, S.W.; Wittwer, J.E. Dual-task testing to predict falls in community-dwelling older adults: A systematic review. Physiotherapy 2016, 102, 29–40. [Google Scholar] [CrossRef]
- Moreira, P.E.D.; Dieguez, G.T.O.; Bredt, S.; Praça, G.M. The Acute and Chronic Effects of Dual-Task on the Motor and Cognitive Performances in Athletes: A Systematic Review. Int. J. Environ. Res. Public Health 2021, 18, 1732. [Google Scholar] [CrossRef]
- Pliske, G.; Emmermacher, P.; Weinbeer, V.; Witte, K. Changes in dual-task performance after 5 months of karate and fitness training for older adults to enhance fall prevention. Aging Clin. Exp. Res. 2016, 28, 1179–1186. [Google Scholar] [CrossRef]
- Montero-Odasso, M.; Oteng-Amoako, A.; Speechley, M.; Gopaul, K.; Beauchet, O.; Annweiler, C.; Muir-Hunter, S.W. The motor signature of mild cognitive impairment: Results from the gait and brain study. J. Gerontol. Ser. A Biol. Sci. Med. Sci. 2014, 69, 1415–1421. [Google Scholar] [CrossRef]
- Siu, K.-C.; Chou, L.-S.; Mayr, U.; van Donkelaar, P.; Woollacott, M.H. Attentional mechanisms contributing to balance constraints during gait: The effects of balance impairments. Brain Res. 2009, 1248, 59–67. [Google Scholar] [CrossRef]
- Kedziorek, J.; Blazkiewicz, M. Nonlinear Measures to Evaluate Upright Postural Stability: A Systematic Review. Entropy 2020, 22, 1357. [Google Scholar] [CrossRef]
- Potvin-Desrochers, A.; Richer, N.; Lajoie, Y. Cognitive task promote automatization of postural control in young and older adults. Gait Posture 2017, 57, 40–45. [Google Scholar]
- Doyle, T.L.; Dugan, E.L.; Humphries, B.; Newton, R.U. Discriminating between elderly and young using a fractal dimension analysis of centre of pressure. Int. J. Med. Sci. 2004, 1, 11–20. [Google Scholar] [CrossRef] [PubMed]
- Omid Khayat, M.S. Complex Feature Analysis of Center of Pressure Signal for Age-Related Subject Classification. Ann. Mil. Health Sci. Res. 2014, 12, 2–7. [Google Scholar]
- Akbas, A.; Marszalek, W.; Drozd, S.; Czarny, W.; Krol, P.; Warchol, K.; Slomka, K.J.; Rzepko, M. The effect of expertise on postural control in elite sport ju-jitsu athletes. BMC Sports Sci. Med. Rehabil. 2022, 14, 86. [Google Scholar] [CrossRef] [PubMed]
- Goldberger, A.L.; Amaral, L.A.; Glass, L.; Hausdorff, J.M.; Ivanov, P.C.; Mark, R.G.; Mietus, J.E.; Moody, G.B.; Peng, C.K.; Stanley, H.E. PhysioBank, PhysioToolkit, and PhysioNet: Components of a new research resource for complex physiologic signals. Circulation 2000, 101, E215–E220. [Google Scholar] [CrossRef]
- Richman, J.S.; Moorman, J.R. Physiological time-series analysis using approximate entropy and sample entropy. Am. J. Physiol. Heart Circ. Physiol. 2000, 278, H2039–H2049. [Google Scholar] [CrossRef]
- Higuchi, T. Approach to an irregular time series on the basis of the fractal theory. Phys. D Nonlinear Phenom. 1988, 31, 277–283. [Google Scholar] [CrossRef]
- Wolf, A.; Swift, J.B.; Swinney, H.L.; Vastano, J.A. Determining Lyapunov exponents from a time series. Phys. D Nonlinear Phenom. 1985, 16, 285–317. [Google Scholar] [CrossRef]
- Faul, F.; Erdfelder, E.; Lang, A.G.; Buchner, A. G*Power 3: A flexible statistical power analysis program for the social, behavioral, and biomedical sciences. Behav. Res. Methods 2007, 39, 175–191. [Google Scholar] [CrossRef]
- Mukaka, M.M. Statistics corner: A guide to appropriate use of correlation coefficient in medical research. Malawi Med. J. 2012, 24, 69–71. [Google Scholar]
- Rosnow, R.L. Effect sizes for experimenting psychologists. Can. J. Exp. Psychol./Rev. Can. Psychol. Exp. 2003, 57, 221–237. [Google Scholar] [CrossRef]
- Cano, L.A.; Gerez, G.D.; García, M.S.; Albarracín, A.L.; Farfán, F.D.; Fernández-Jover, E. Decision-Making Time Analysis for Assessing Processing Speed in Athletes during Motor Reaction Tasks. Sports 2024, 12, 151. [Google Scholar] [CrossRef] [PubMed]
- Lima, P.O.; Lima, A.A.; Coelho, A.C.; Lima, Y.L.; Almeida, G.P.; Bezerra, M.A.; de Oliveira, R.R. Biomechanical Differences in Brazilian Jiu-Jitsu Athletes: The Role of Combat Style. Int. J. Sports Phys. Ther. 2017, 12, 67–74. [Google Scholar] [PubMed]
- Wąsacz, W.; Rydzik, Ł.; Šimenko, J.; Kędra, A.; Błach, W.; Ambroży, T. The Development of the Special Brazilian Jiu-Jitsu Fitness Test: Takedown Zone (SBJJFT-TZ), Gi Formula. Appl. Sci. 2024, 14, 4711. [Google Scholar] [CrossRef]
- Sterkowicz, S.; Lech, G.; Jaworski, J.; Ambrozy, T. Coordination motor abilities of judo contestants at different age. J. Combat. Sports Martial Arts 2012, 1, 5–10. [Google Scholar]
- Lech, G.; Palka, T.; Tyka, A.; Jaworski, J.; Chwala, W.; Sterkowicz, S.; Ambrozy, T. Effect of motor abilities on the course of fight and achievement level in judokas at different age. Arch. Budo Sci. Martial Arts Extrem. Sports 2015, 11, 169–179. [Google Scholar]
- Witkowski, K.; Maslinski, J.; Remiarz, A. Static and dynamic balance in 14-15 year old boys training judo and in their non-active peers. Arch. Budo 2014, 10, 323–331. [Google Scholar]
- Simsek, D.; Yildiz, A. The Acute Effects of Dual Task on the Motor and Cognitive Performances in Taekwondo Players. Kinesiol. Slov. 2022, 28, 86–101. [Google Scholar] [CrossRef]
Group | Brazilian Jiu-Jitsu | Control | U-Value | p-Value | Effect Size |
---|---|---|---|---|---|
Reaction time parameters | |||||
R_standing [s] | 0.42 (0.40; 0.45) | 0.47 (0.42; 0.49) | 62.5 | p = 0.0242 * | 0.4 |
R_sitting [s] | 0.41 (0.37; 0.43) | 0.44 (0.41; 0.47) | 57 | p = 0.0134 * | 0.4 |
N_standing [-] | 76 (73; 78) | 73 (69.5; 77) | 71 | p = 0.0538 | 0.4 |
N_sitting [-] | 77 (76; 80) | 75.50 (72; 77) | 53 | p = 0.0077 * | 0.5 |
Linear parameters | |||||
CoP_path_2eo [mm] | 217 (186; 250.50) | 236 (193; 264.25) | 97.5 | p = 0.3844 | 0.16 |
CoP_path_1eo [mm] | 1083 (956.25; 1251) | 1131 (1006; 1218.50) | 114 | p = 0.8278 | 0.04 |
CoP_path_2eos [mm] | 225 (196.25; 290.50) | 235 (191; 271) | 111 | p = 0.7368 | 0.06 |
CoP_path_1eos [mm] | 1437 (1286.5; 1619) | 1571 (1453.75; 1846.25) | 84 | p = 0.1605 | 0.25 |
Nonlinear parameters | |||||
SampEn_ML_2eo [-] | 0.34 (0.30; 0.39) | 0.36 (0.32; 0.39) | 111 | p = 0.0134 * | 0.06 |
SampEn_AP_2eo [-] | 0.26 (0.22; 0.33) | 0.25 (0.22; 0.32) | 110 | p = 0.7368 | 0.07 |
FD_ML_2eo [-] | 1.95 (1.92; 1.96) | 1.95 (1.93; 1.96) | 110 | p = 0.7072 | 0.07 |
FD_AP_2eo [-] | 1.89 (1.87; 1.93) | 1.90 (1.88; 1.94) | 105 | p = 0.7072 | 0.1 |
LyE_ML_2eo [-] | 0.08 (0.08; 0.1) | 0.09 (0.08; 0.10) | 103 | p = 0.5665 | 0.12 |
LyE_AP_2eo [-] | 0.07 (0.06; 0.08) | 0.07 (0.07; 0.08) | 113 | p = 0.5142 | 0.05 |
SampEn_ML_1eo [-] | 0.59 (0.58; 0.60) | 0.59 (0.57; 0.60) | 117 | p = 0.7972 | 0.02 |
SampEn_AP_1eo [-] | 0.59 (0.58; 0.60) | 0.59 (0.58; 0.59) | 86 | p = 0.9212 | 0.24 |
FD_ML_1eo [-] | 2.01 (2; 2.01) | 2 (1.99; 2.01) | 112 | p = 0.1854 | 0.05 |
FD_AP_1eo [-] | 2.01 (2; 2.01) | 2.01 (2; 2.01) | 91 | p = 0.7668 | 0.2 |
LyE_ML_1eo [-] | 0.15 (0.13; 0.16) | 0.13 (0.12; 0.14) | 56 | p = 0.0120 * | 0.45 |
LyE_AP_1eo [-] | 0.09 (0.08; 0.10) | 0.09 (0.08; 0.10) | 109 | p = 0.6781 | 0.07 |
SampEn_ML_2eos [-] | 0.36 (0.3; 0.40) | 0.33 (0.29; 0.41) | 112 | p = 0.7668 | 0.05 |
SampEn_AP_2eos [-] | 0.25 (0.2; 0.33) | 0.24 (0.22; 0.26) | 117 | p = 0.9212 | 0.02 |
FD_ML_2eos [-] | 1.94 (1.93; 1.96) | 1.94 (1.92; 1.97) | 116 | p = 0.8899 | 0.02 |
FD_AP_2eos [-] | 1.90 (1.86; 1.94) | 1.89 (1.88; 1.92) | 114 | p = 0.8278 | 0.04 |
LyE_ML_2eos [-] | 0.09 (0.08; 0.10) | 0.09 (0.08; 0.10) | 118 | p = 0.9527 | 0.01 |
LyE_AP_2eos [-] | 0.07 (0.06; 0.07) | 0.06 (0.05; 0.07) | 108 | p = 0.6494 | 0.08 |
SampEn_ML_1eos [-] | 0.60 (0.59; 0.60) | 0.60 (0.59; 0.60) | 120 | p = 0.9842 | 0.01 |
SampEn_AP_1eos [-] | 0.60 (0.59; 0.61) | 0.60 (0.60; 0.61) | 88 | p = 0.2130 | 0.22 |
FD_ML_1eos [-] | 2.007 (2.003; 2.0101) | 2.009 (2.005; 2.011) | 100 | p = 0.44082 | 0.14 |
FD_AP_1eos [-] | 2.0102 (2.008; 2.0109) | 2.012 (2.011; 2.013) | 37 | p = 0.0011 * | 0.59 |
LyE_ML_1eos [-] | 0.15 (0.13; 0.16) | 0.15 (0.14; 0.16) | 82 | p = 0.1382 | 0.27 |
LyE_AP_1eos [-] | 0.096 (0.089; 0.10) | 0.092 (0.087; 0.10) | 97 | p = 0.3737 | 0.16 |
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Kędziorek, J.; Błażkiewicz, M.; Wąsik, J.; Szopa, J.; Sołdacka, A. Reaction Time and Postural Control Under Dual-Task Conditions in Brazilian Jiu-Jitsu Athletes. Appl. Sci. 2025, 15, 3877. https://doi.org/10.3390/app15073877
Kędziorek J, Błażkiewicz M, Wąsik J, Szopa J, Sołdacka A. Reaction Time and Postural Control Under Dual-Task Conditions in Brazilian Jiu-Jitsu Athletes. Applied Sciences. 2025; 15(7):3877. https://doi.org/10.3390/app15073877
Chicago/Turabian StyleKędziorek, Justyna, Michalina Błażkiewicz, Jacek Wąsik, Janusz Szopa, and Agnieszka Sołdacka. 2025. "Reaction Time and Postural Control Under Dual-Task Conditions in Brazilian Jiu-Jitsu Athletes" Applied Sciences 15, no. 7: 3877. https://doi.org/10.3390/app15073877
APA StyleKędziorek, J., Błażkiewicz, M., Wąsik, J., Szopa, J., & Sołdacka, A. (2025). Reaction Time and Postural Control Under Dual-Task Conditions in Brazilian Jiu-Jitsu Athletes. Applied Sciences, 15(7), 3877. https://doi.org/10.3390/app15073877